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  4. Impact of Sequential Design on the Cost of Adiabatic Quantum-Flux Parametron Circuits
 
research article

Impact of Sequential Design on the Cost of Adiabatic Quantum-Flux Parametron Circuits

Lee, Siang-Yun  
•
Ayala, Christopher Lawrence
•
De Micheli, Giovanni  
November 1, 2023
IEEE Transactions on Applied Superconductivity

quantum-flux-parametron (AQFP) logic is a superconductor logic family whose energy efficiency approaches theoretical limits. Because AQFP logic gates depend on a polyphase excitation current to perform their computation, gate fanins must arrive at the appropriate excitation phase. Such a technology constraint has conventionally been treated by inserting buffers to balance shorter paths. However, path-balancing buffers account for a large portion of the circuit area, limiting the scalability of AQFP circuits. In this article, we examine the necessity of AQFP design constraints and propose a more relaxed set of constraints, which still guarantees the correct operation of AQFP sequential circuits. In particular, we propose to consider phase alignment instead of path balancing. Experimental results show that adopting the relaxed constraints reduces 73% of buffers on average, and up to 90% in some particularly-imbalanced benchmarks.

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Type
research article
DOI
10.1109/TASC.2023.3308408
Web of Science ID

WOS:001068874300001

Author(s)
Lee, Siang-Yun  
Ayala, Christopher Lawrence
De Micheli, Giovanni  
Date Issued

2023-11-01

Publisher

IEEE Institute of Electrical and Electronics Engineers

Published in
IEEE Transactions on Applied Superconductivity
Volume

33

Issue

8

Article Number

1304809

Subjects

Engineering, Electrical & Electronic

•

Physics, Applied

•

Engineering

•

Physics

•

logic gates

•

clocks

•

registers

•

costs

•

sequential circuits

•

schedules

•

integrated circuit modeling

•

adiabatic quantum-flux-parametron (aqfp)

•

buffer insertion

•

sequential logic circuit

•

superconductor electronics

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

Available on Infoscience
October 9, 2023
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/201457
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